A novel upscaling procedure for characterising heterogeneous shale porosity from nanometer-to millimetre-scale in 3D

微尺度化学 多孔性 代表性基本卷 比例(比率) 油页岩 材料科学 微观结构 纳米尺度 体积热力学 纳米 矿物学 地质学 纳米技术 物理 复合材料 数学 量子力学 数学教育 古生物学
作者
Lin Ma,Patrick J. Dowey,E. H. Rutter,Kevin G. Taylor,Peter Lee
出处
期刊:Energy [Elsevier BV]
卷期号:181: 1285-1297 被引量:69
标识
DOI:10.1016/j.energy.2019.06.011
摘要

Microstructures and pore systems in shales are key to understanding the role of shale in many energy applications. This study proposes a novel multi-stage upscaling procedure to comprehensively investigate the heterogeneous and complex microstructures and pore systems in a laminated and microfractured shale, utilising 3D multi-scale imaging data. Five imaging techniques were used for characterisation from sub-nanoscale to macroscale (core-scale), spanning four orders of magnitude. Image data collected using X-ray tomography, Focused Ion Beam, and Electron Tomography techniques range in voxel size from 0.6 nm to 13 μm. Prior to upscaling, a novel two-step analysis was performed to ensure sub-samples were representative. Following this, a three-step procedure, based on homogenising descriptors and computed volume coefficients, was used to upscale the quantified microstructure and pore system. At the highest resolution (nanoscale), four distinct pore types were identified. At the sub-micron scale equations were derived for three pore-associated phases. At the microscale, the volume coefficients were recalculated to upscale the pore system to the millimetre- scale. The accuracy of the upscaling methodology was verified, predicting the total porosity within 7.2% discrepancy. The results provide a unique perspective to understand heterogeneous rock types, breaking though prior scale limitations in the pore system.
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